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首页> 外文期刊>Journal of molecular catalysis, B. Enzymatic >Biochemical characterization of unusual meso-2,3-butanediol dehydrogenase from a strain of Bacillus subtilis
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Biochemical characterization of unusual meso-2,3-butanediol dehydrogenase from a strain of Bacillus subtilis

机译:枯草芽孢杆菌菌株中异常的meso-2,3-丁二醇脱氢酶的生化特性

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摘要

meso-2,3-Butanediol dehydrogenase (BDH) catalyzes the redox reaction between (K)-acetoin and meso-2,3-butanediol (meso-BD). The BDHs isolated from bacteria are generally characterized as homo-tetramers. In the present work, an isolated and identified high acetoin (AC)-yielding (41.63 g/L) bacteria strain belonging to Barillus subtilis but without 2,3-butanediol(BD)byproductduringits fermentation was selected. To understand the characteristics of BDH activity from this high AC-yielding strain, we cloned, purified and compared the BDH from Enterobacter aerogenes (CICC10293) (E. a-BDH) with the BDH from this high AC-yielding strain B. subtilis. Sequence alignments indicate a non-conservative amino acid substitution from Asp to Gly at site 194 on the B. s-BDH compared to that of E. a-BDH. Enzymatic analysis of E. a-BDH and D194G B. s-BDH shows D194G B. s-BDH has almost lost its entire enzymatic activity. Moreover, Isothermal titration calorimetry (ITC) measurements detected the substrate binding for the D194G B. s-BDH but no reaction was detected. Circular dicroism (CD) spectroscopy characterization revealed an identical secondary structure of E. a-BDH and D194G B. s-BDH. Remarkably, D194G B. s-BDH is highly susceptible to protease digestion, suggesting that the aspartic acid to glycine substitution might cause the proteolytic susceptibility of D194G B. s-BDH. Furthermore, by homology modeling with meso-2,3-butanediol dehydrogenase from Klebsiella pneumoniae (K. p-BDH) as a template, Gly 194 seems to lose the hydrogen bond interactions with the surrounding residues (Gly206, GIy207 and Thr209), resulting in a putative conformational changes of D194G B. s-BDH which might be responsible for the loss of activity.
机译:meso-2,3-丁二醇脱氢酶(BDH)催化(K)-丙酮和meso-2,3-丁二醇(meso-BD)之间的氧化还原反应。从细菌中分离的BDH通常被称为同四聚体。在本工作中,选择了一种分离并鉴定出的高枯草杆菌(AC)产量(41.63 g / L)的细菌菌株,该菌株属于枯草芽孢杆菌,但发酵过程中没有副产物2,3-丁二醇(BD)。为了了解这种高产AC菌株的BDH活性的特征,我们克隆,纯化并比较了产气肠杆菌(CICC10293)(E. a-BDH)的BDH与这种高产AC菌株枯草芽孢杆菌的BDH。序列比对表明与E.a-BDH相比,在B.s-BDH的位点194上从Asp到Gly的非保守氨基酸取代。对E. a-BDH和D194G B. s-BDH的酶促分析显示,D194G B. s-BDH几乎失去了全部酶促活性。此外,等温滴定热法(ITC)测量检测到了与D194G B. s-BDH的底物结合,但未检测到反应。圆二色谱(CD)光谱表征揭示了E. a-BDH和D194G B. s-BDH的相同二级结构。值得注意的是,D194G B. s-BDH对蛋白酶消化高度敏感,表明天冬氨酸被甘氨酸取代可能引起D194G B. s-BDH的蛋白水解敏感性。此外,通过以肺炎克雷伯菌(K. p-BDH)的meso-2,3-丁二醇脱氢酶为模板进行同源建模,Gly 194似乎失去了与周围残基(Gly206,Gly207和Thr209)的氢键相互作用。 D194G B. s-BDH的假定构象变化可能是造成活性丧失的原因。

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